Arid
DOI10.1111/j.1365-2486.2011.02599.x
Temperature and precipitation controls over leaf- and ecosystem-level CO2 flux along a woody plant encroachment gradient
Barron-Gafford, Greg A.1,2; Scott, Russell L.3; Jenerette, G. Darrel4; Hamerlynck, Erik P.3; Huxman, Travis E.1,2
通讯作者Barron-Gafford, Greg A.
来源期刊GLOBAL CHANGE BIOLOGY
ISSN1354-1013
EISSN1365-2486
出版年2012
卷号18期号:4页码:1389-1400
英文摘要

Conversion of grasslands to woodlands may alter the sensitivity of CO2 exchange of individual plants and entire ecosystems to air temperature and precipitation. We combined leaf-level gas exchange and ecosystem-level eddy covariance measurements to quantify the effects of plant temperature sensitivity and ecosystem temperature responses within a grassland and mesquite woodland across seasonal precipitation periods. In so doing, we were able to estimate the role of moisture availability on ecosystem temperature sensitivity under large-scale vegetative shifts. Optimum temperatures (Topt) for net photosynthetic assimilation (A) and net ecosystem productivity (NEP) were estimated from a function fitted to A and NEP plotted against air temperature. The convexities of these temperature responses were quantified by the range of temperatures over which a leaf or an ecosystem assimilated 50% of maximum NEP (O50). Under dry pre- and postmonsoon conditions, leaf-level O50 in C3 shrubs were two-to-three times that of C4 grasses, but under moist monsoon conditions, leaf-level O50 was similar between growth forms. At the ecosystems-scale, grassland NEP was more sensitive to precipitation, as evidenced by a 104% increase in maximum NEP at monsoon onset, compared to a 57% increase in the woodland. Also, woodland NEP was greater across all temperatures experienced by both ecosystems in all seasons. By maintaining physiological function across a wider temperature range during water-limited periods, woody plants assimilated larger amounts of carbon. This higher carbon-assimilation capacity may have significant implications for ecosystem responses to projected climate change scenarios of higher temperatures and more variable precipitation, particularly as semiarid regions experience conversions from C4 grasses to C3 shrubs. As regional carbon models, CLM 4.0, are now able to incorporate functional type and photosynthetic pathway differences, this work highlights the need for a better integration of the interactive effects of growth form/functional type and photosynthetic pathway on water resource acquisition and temperature sensitivity.


英文关键词eddy covariance mesquite (Prosopis velutina) net ecosystem exchange photosynthesis respiration temperature optima vegetative change woody plant encroachment
类型Article
语种英语
国家USA
收录类别SCI-E
WOS记录号WOS:000301533100015
WOS关键词BIOCHEMICALLY BASED MODEL ; WARM-DESERT PHREATOPHYTE ; CARBON-DIOXIDE EXCHANGE ; THERMAL-ACCLIMATION ; SEASONAL PATTERNS ; CLIMATE-CHANGE ; PHOTOSYNTHESIS ; RESPIRATION ; WATER ; PARAMETERS
WOS类目Biodiversity Conservation ; Ecology ; Environmental Sciences
WOS研究方向Biodiversity & Conservation ; Environmental Sciences & Ecology
来源机构University of Arizona
资源类型期刊论文
条目标识符http://119.78.100.177/qdio/handle/2XILL650/172653
作者单位1.Univ Arizona, Dept Ecol & Evolutionary Biol, Tucson, AZ 85721 USA;
2.Univ Arizona, Earthsci B2, Biosphere 2, Tucson, AZ 85721 USA;
3.ARS, USDA, SW Watershed Res Ctr, Tucson, AZ 85719 USA;
4.Univ Calif Riverside, Dept Bot & Plant Sci, Riverside, CA 92521 USA
推荐引用方式
GB/T 7714
Barron-Gafford, Greg A.,Scott, Russell L.,Jenerette, G. Darrel,et al. Temperature and precipitation controls over leaf- and ecosystem-level CO2 flux along a woody plant encroachment gradient[J]. University of Arizona,2012,18(4):1389-1400.
APA Barron-Gafford, Greg A.,Scott, Russell L.,Jenerette, G. Darrel,Hamerlynck, Erik P.,&Huxman, Travis E..(2012).Temperature and precipitation controls over leaf- and ecosystem-level CO2 flux along a woody plant encroachment gradient.GLOBAL CHANGE BIOLOGY,18(4),1389-1400.
MLA Barron-Gafford, Greg A.,et al."Temperature and precipitation controls over leaf- and ecosystem-level CO2 flux along a woody plant encroachment gradient".GLOBAL CHANGE BIOLOGY 18.4(2012):1389-1400.
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